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Mishra, C. S.

Paper Title Page
WEOBAB02 Studies of Emittance Bumps and Adaptive Alignment method for ILC Main Linac 1973
 
  • N. Solyak, V. Ivanov, C. S. Mishra, K. Ranjan
    Fermilab, Batavia, Illinois
 
  Funding: U. S. Department of Energy

International Linear Collider (ILC) is a proposed electron-positron accelerator requiring very small spot-size at the interaction point, and thus necessitates very tight tolerances on beamline elements. For static tuning of the machine a few methods like dispersion-free steering (DFS) or kick minimization (KM) techniques was proposed. The further suppression of emittance growth can be achieved by using close orbit emittance bumps. Stability of ILC is determined by the stability of the site, additional noises of beamline component, energy and kicker jitter and performance of the train-to-train and intra-train feedback. We discuss the performances of the Adaptive Alignment technique, which keeps accelerator dynamically aligned in presence of ground motion an technical noises. This presentation is an overview of two posters THPMN107 and THPMN108, presented at PAC07.

 
slides icon Slides  
THIIKI02 The Importance of Forums to the ILC 2669
 
  • C. S. Mishra
    Fermilab, Batavia, Illinois
 
  Abstract to be provided by the speaker.  
THIAKI06 Progress in Cryomodules & Cavities in India 2683
 
  • C. S. Mishra
    Fermilab, Batavia, Illinois
 
  Abstract to be submitted by author.  
THPMN108 Study of Adaptive Alignment as Beam Based Alignment in ILC Main Linac in the Presence of Ground Motion 2963
 
  • N. Solyak, V. Ivanov, C. S. Mishra, K. Ranjan
    Fermilab, Batavia, Illinois
 
  Funding: U. S. Department of Energy

The proposed International Linear Collider (ILC) machine requires extremely small transverse emittances of the beam to achieve desired luminosity. A very precise alignment of the beamline elements, both in main linac and in beam delivery system, is required to limit the emittance growth. However, ground motion (GM) and technical noise continuously misaligns the elements and hence spoils the effect of alignment. It is thus very important to understand and analyze the effect of GM on the performance of ILC. Also, it is imperative to find an effective dynamic alignment procedure to preserve the transverse emittances in the presence of GM. In this paper we study the effect of GM and technical noise on the proposed ILC main linac. Initial alignment of the Linac is performed through one-to-one and dispersion free steering (DFS). We then study "Adaptive Alignment" method to mitigate the effects of GM and technical noise.